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Biological barriers to chromosomal hybrid formation in Escherichia coli
Uppsala University, Disciplinary Domain of Medicine and Pharmacy, Faculty of Medicine, Department of Medical Biochemistry and Microbiology.ORCID iD: 0000-0001-6459-1397
Uppsala University, Disciplinary Domain of Medicine and Pharmacy, Faculty of Medicine, Department of Medical Biochemistry and Microbiology.
Uppsala University, Disciplinary Domain of Medicine and Pharmacy, Faculty of Medicine, Department of Medical Biochemistry and Microbiology.
Uppsala University, Disciplinary Domain of Medicine and Pharmacy, Faculty of Medicine, Department of Medical Biochemistry and Microbiology.ORCID iD: 0000-0001-9974-578x
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(English)Manuscript (preprint) (Other academic)
Abstract [en]

Integrated conjugative elements can drive the transfer of chromosomal DNA from one Escherichia coli strain into another, generating strains with hybrid chromosomes. Several pandemic virulent multidrug-resistant strains of E. coli are chromosomal hybrids. Here we show that the frequency of hybrid formation can differ by orders of magnitude depending on the parental combination. However, the donor-recipient characteristics affecting hybridization efficiency are poorly understood. The laboratory workhorse strain E. coli MG1655 is significantly more proficient as a recipient in hybrid generation than E. coli ATCC25922, the strain used for quality control in antibiotic susceptibility testing. Focusing on these two strains we tested several hypotheses to identify barriers to hybrid formation. Among these, we found that relative conjugation efficiency correlated with hybrid formation frequency. To explore this, we used transposon mutagenesis to identify genes in ATCC25922 whose inactivation relieves a conjugation barrier. Among the first 1500 mutants tested we isolated and identified one that was 500-fold more conjugation-permissive than the parental strain. Whole genome sequencing identified this candidate ‘barrier’ gene as a protein-coding sequence on plasmid 3. Understanding the barrier mechanism will require further study. We are currently testing whether inactivation of this gene also increases chromosomal hybrid formation. The importance of this work is that it could significantly deepen our understanding of preferred pathways of HGT, something that will have broad application in both clinical and evolutionary biology.

Keywords [en]
chromosomal hybrids, O-antigen, conjugation, clinical isolates
National Category
Microbiology
Identifiers
URN: urn:nbn:se:uu:diva-586140OAI: oai:DiVA.org:uu-586140DiVA, id: diva2:2059332
Available from: 2026-05-12 Created: 2026-05-12 Last updated: 2026-05-12
In thesis
1. Chromosomal Hybrids: A source of globally-spread antibiotic-resistant pathogens
Open this publication in new window or tab >>Chromosomal Hybrids: A source of globally-spread antibiotic-resistant pathogens
2026 (English)Doctoral thesis, comprehensive summary (Other academic)
Abstract [en]

Antibiotic susceptible bacteria can develop resistance to antibiotics through different genetic pathways. Among the most important are mutations occurring within the genome, and the acquisition through horizontal genetic transfer (HGT) of additional genes that can reduce susceptibility to antibiotics, located in mobile genetic elements such as plasmids. The discovery of pathogenic strains of Escherichia coli and Klebsiella pneumoniae that have a chromosome with at least 20% (> 1 Mb) of DNA originating from a foreign strain suggest that an alternative pathway remains unexplored: the conjugative transfer of large areas of chromosomal DNA, generating bacterial strains with hybrid chromosomes. The projects presented in this thesis focused on studying different aspects about the generation of chromosomal hybrids.  

We first designed and implemented a conjugation method that allows for the selection of bacteria with hybrid chromosomes from large populations and found that a large proportion of clinical strains of E. coli are capable of mobilizing their chromosome and can generate hybrids. Genome sequencing showed that several Mb of foreign DNA could be integrated into the recipient’s chromosome. Multiple resistance genes and alleles could be acquired simultaneously and without direct selection are maintained stably by the hybrid. Furthermore, we showed that any one conjugative mobile element, be it plasmid or ICE, was itself sufficient to mobilize the chromosome. 

In the second project, we studied interspecies hybrids of K. pneumoniae clinical isolates and E. coli laboratory strains. We found chromosomal hybrids to be stable in the absence of selective pressure and fit for growth. 

Third, we initiated a study to identify biological barriers that inhibit the formation of chromosomal hybrids in nature. We used both phenotypic selection and transposon generated mutants of the clinical E. coli strain ATCC25922 to identify genes which, when inactivated, lower the conjugation barrier to the formation of hybrids.  

Finally, we explored whether E. coli could maintain prototrophy in the absence of HGT by acquiring compensatory mutations within its genome. We found that compensatory bypass mechanisms in mutants with gene deletions causing auxotrophy were accessible only to a handful of pathways for amino acid synthesis. 

These results highlight the importance of HGT in bacterial survival and evolution. 

Place, publisher, year, edition, pages
Uppsala: Acta Universitatis Upsaliensis, 2026. p. 60
Series
Digital Comprehensive Summaries of Uppsala Dissertations from the Faculty of Medicine, ISSN 1651-6206 ; 2281
Keywords
bacterial evolution, hybrid chromosomes, antibiotic resistance, ICE, conjugative plasmids
National Category
Microbiology
Research subject
Microbiology; Medical Science
Identifiers
urn:nbn:se:uu:diva-586142 (URN)978-91-513-2879-9 (ISBN)
Public defence
2026-09-04, Sal IV, Biskopsgatan 3, Uppsala, 13:00 (English)
Opponent
Supervisors
Available from: 2026-06-11 Created: 2026-05-12 Last updated: 2026-06-11

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Berruga Fernández, TaliaHuseby, Douglas L.Hughes, Diarmaid

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